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Max-min SINR low complexity transceiver design for single cell massive MIMO

机译:用于单小区大规模MIMO的Max-min SINR低复杂度收发器设计

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This work focuses on large scale multi-user MIMO systems in which the base station (BS) outfitted with M antennas communicates with K single antenna user equipments (UEs). In particular, we aim at designing the linear precoder and receiver that maximizes the minimum signal-to-interference-plus-noise ratio (SINR) subject to a given power constraint. To gain insights into the structure of the optimal precoder and receiver as well as to reduce the computational complexity for their implementation, we analyze the asymptotic regime where M and K grow large with a given ratio and make use of random matrix theory (RMT) tools to compute accurate approximations. Although simpler, the implementation of the asymptotic precoder and receiver requires fast inversions of large matrices in every coherence period. To overcome this issue, we apply the truncated polynomial expansion (TPE) technique to the precoding and receiving vector of each UE and make use of RMT to determine the optimal weighting coefficients that asymptotically solve the max-min SINR problem. Numerical results are used to show that the proposed TPE-based precoder and receiver almost achieve the same performance as the optimal ones while requiring a lower complexity.
机译:这项工作集中在大规模多用户MIMO系统上,其中配备M根天线的基站(BS)与K个单天线用户设备(UE)通信。特别是,我们的目标是设计一种线性预编码器和接收器,该线性预编码器和接收器在给定的功率约束下能使最小信号干扰加噪声比(SINR)最大化。为了深入了解最佳预编码器和接收器的结构并降低其实现的计算复杂性,我们分析了渐近状态,其中M和K以给定的比例增大,并使用随机矩阵理论(RMT)工具计算精确的近似值。尽管更简单,但渐进预编码器和接收器的实现需要在每个相干周期中快速转换大型矩阵。为了克服这个问题,我们将截断多项式扩展(TPE)技术应用于每个UE的预编码和接收矢量,并利用RMT来确定渐近解决max-min SINR问题的最佳加权系数。数值结果表明,所建议的基于TPE的预编码器和接收器几乎可以达到与最佳性能相同的性能,同时所需的复杂度更低。

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